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Titlebook: Complex Networks and Their Applications VII; Volume 2 Proceedings Luca Maria Aiello,Chantal Cherifi,Luis M. Rocha Conference proceedings 20

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發(fā)表于 2025-3-21 18:45:21 | 只看該作者 |倒序瀏覽 |閱讀模式
書目名稱Complex Networks and Their Applications VII
副標題Volume 2 Proceedings
編輯Luca Maria Aiello,Chantal Cherifi,Luis M. Rocha
視頻videohttp://file.papertrans.cn/232/231506/231506.mp4
概述Presents the latest research on complex networks and their applications.Gathers the edited proceedings of the Seventh International Conference on Complex Networks and their Applications (COMPLEX NETWO
叢書名稱Studies in Computational Intelligence
圖書封面Titlebook: Complex Networks and Their Applications VII; Volume 2 Proceedings Luca Maria Aiello,Chantal Cherifi,Luis M. Rocha Conference proceedings 20
描述This book highlights cutting-edge research in the field of network science, offering scientists, researchers, students and practitioners a unique update on the latest advances in theory, together with a wealth of applications. It presents the peer-reviewed proceedings of the VII International Conference on Complex Networks and their Applications (COMPLEX NETWORKS 2018), which was held in Cambridge on December 11–13, 2018. The carefully selected papers cover a wide range of theoretical topics such as network models and measures; community structure and network dynamics; diffusion, epidemics and spreading processes; and resilience and control; as well as all the main network applications, including social and political networks; networks in finance and economics; biological and neuroscience networks; and technological networks.
出版日期Conference proceedings 2019
關(guān)鍵詞Complex Networks; Complex Networks 2018; Network Models; Network Dynamics; Network Analysis
版次1
doihttps://doi.org/10.1007/978-3-030-05414-4
isbn_ebook978-3-030-05414-4Series ISSN 1860-949X Series E-ISSN 1860-9503
issn_series 1860-949X
copyrightSpringer Nature Switzerland AG 2019
The information of publication is updating

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Analysis of the Web Graph Aggregated by Host and Pay-Level Domainased by the Common Crawl Foundation?(.) and are based on a web crawl performed during the period May-June-July 2017. The host graph has .1.3 billion nodes and .5.3 billion arcs. The PLD graph has .91 million nodes and .1.1 billion arcs. We study the distributions of degree and sizes of strongly/weak
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Characterizing Temporal Bipartite Networks - Sequential- Versus Cross-Taskingllows us to explore user behavior in-depth. We propose two metrics, the relative switch frequency and distraction in time to measure a user’s sequential-tasking level, i.e. to what extent a user interacts with a task consecutively without interacting with other tasks in between. We analyze the seque
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Spectral Measures of Distortion for Change Detection in Dynamic Graphs, which can be sensitive to minor and isolated changes, and are often based on heuristics, we show how a theoretically-justified, inherently multi-scale notion of change, or distortion, can be defined and computed using spectral graph-theoretic tools. Our primary observation is that informative, rob
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The Impact of Indirect Connections: The Case of Food Security Problemnections between nodes. We reward edges that increase node-to-node influence compared to direct connections between them. This approach allows to reveal hidden channels of the influence in networks. We apply the proposed model to food export/import networks in order to elucidate the most important t
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A Compressive Sensing Framework for Distributed Detection of High Closeness Centrality Nodes in Netw algorithms require a node to only have local interactions with its immediate neighbors. This is due to the fact that the whole network topology is usually unknown to each individual node. Detecting key actors within a network with respect to different notions of influence, has recently received a l
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: A Scalable Multiplex Network Embedding Frameworktwork-based machine learning tasks like node classification, link prediction, and network alignment. However, very few methods focus on capturing representations for . networks, which are more accurate and detailed representations of complex networks. In this work, we propose . a fast and scalable e
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